Printing apparatus
11510310 · 2022-11-22
Assignee
Inventors
Cpc classification
B41J2/14
PERFORMING OPERATIONS; TRANSPORTING
B41J2202/08
PERFORMING OPERATIONS; TRANSPORTING
B41J29/377
PERFORMING OPERATIONS; TRANSPORTING
B41J2202/13
PERFORMING OPERATIONS; TRANSPORTING
H05K1/0209
ELECTRICITY
International classification
B41J2/045
PERFORMING OPERATIONS; TRANSPORTING
B41J29/377
PERFORMING OPERATIONS; TRANSPORTING
Abstract
A printer includes a board configured to control a printing unit operating in the printer that performs printing on a medium, and a heat sink including a counter surface that is provided to face a board surface of the board and that has a shape with a length in a first direction X longer than a length in a second direction Y intersecting the first direction X in a plan view, and configured to receive heat generated in the board with the counter surface and dissipate the heat to the outside. The counter surface includes a slit penetrating the counter surface and extending in the second direction Y.
Claims
1. A printing apparatus comprising: a board configured to control an operation unit operating in the printing apparatus that performs printing on a medium; and a heat sink including a counter surface that is provided to face a board surface of the board and that has a shape with a length in a first direction longer than a length in a second direction intersecting the first direction in a plan view, and configured to receive heat generated in the board with the counter surface and dissipate the heat to the outside, wherein the counter surface includes: a slit penetrating the counter surface and extending in the second direction, a central region in which the slit is not formed from one end to the other end of the counter surface in the first direction, the central region being a region in the second direction, a first end portion region located on one side of the central region in the second direction and provided with a first slit as the slit, and a second end portion region located on the other side of the central region in the second direction and provided with a second slit as the slit, a first electronic component and a second electronic component constituting a circuit of the board are disposed side by side in the first direction on the board surface so as to overlap the central region in a plan view, and the first slit and the second slit are disposed so as to overlap a boundary between the first electronic component and the second electronic component in the first direction.
2. The printing apparatus according to claim 1, wherein a plurality of the slits are provided in the counter surface at intervals in the first direction.
3. The printing apparatus according to claim 1, wherein the first slit and the second slit are provided to be opposite to each other across the central region.
4. The printing apparatus according to claim 1, wherein the heat sink includes a bent surface extending from at least one end portion in the second direction of the counter surface to a direction intersecting the counter surface, and the slit is formed continuously from the counter surface to the bent surface.
5. The printing apparatus according to claim 1, wherein the heat sink is attached to the board with a force acting in a direction from the counter surface toward the board.
6. The printing apparatus according to claim 1, further comprising: a printing unit configured to perform printing on the medium, wherein the operation unit includes the printing unit, and the board is a driving board installed in the printing unit and configured to drive the printing unit.
Description
BRIEF DESCRIPTION OF THE DRAWINGS
(1) The invention will be described with reference to the accompanying drawings, wherein like numbers reference like elements.
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DESCRIPTION OF EXEMPLARY EMBODIMENTS
First Exemplary Embodiment
(14) Hereinafter, an ink jet-type printer 1 (hereinafter simply referred to as a printer 1) as one example of a printing apparatus of the invention will be described with reference to drawings. The printer 1 is a printing apparatus that discharges ink onto a fiber as a medium P and performs printing.
(15) Note that X direction is a movement direction of a printing head and a width direction of the apparatus in an X-Y-Z coordinate system illustrated in each drawing. Y direction is a conveyance direction of the medium P. Z direction is a gravitational direction and indicates a height direction of the apparatus. +Z direction is toward an upper part (including an upper portion, an upper surface, and the like) of the apparatus, and −Z direction side is toward a lower part (including a lower portion, a lower surface, and the like) of the apparatus.
(16) Overview of Printer
(17) The printer 1 in the exemplary embodiment illustrated in
(18) Examples of the medium P used in the printer 1 include fabrics made from fibers such as cotton, silk, wool, synthetic fiber, or mixed fabrics, and a paper medium such as roll paper.
(19) The medium conveyance device 2 includes a first roller 3 driven by a driving source, which is not illustrated, a second roller 4 disposed at a distance from the first roller 3, and the conveyance belt 5 running across the first roller 3 and the second roller 4. In the exemplary embodiment, the second roller 4 is a driven roller rotationally driven by rotation of the first roller 3. However, the second roller 4 may be a driving roller driven by a drive source, similarly to the first roller 3.
(20) The conveyance belt 5 is an endless belt. The conveyance belt 5 may be formed of an elastic material such as rubber and resin, and may also be formed of a metallic material.
(21) The conveyance belt 5 in the exemplary embodiment is configured to allow the medium P to be attached to the conveyance belt 5 with an adhesive, but the conveyance belt 5 is not limited to such a configuration. For example, the conveyance belt 5 may be configured to allow the medium P to be attached to the conveyance belt 5 by electrostatic adsorption or suction adsorption.
(22) The first roller 3 is configured to be rotatable in a first rotation direction A illustrated in
(23) When the first roller 3 is rotated in the first rotation direction A, the conveyance belt 5 is also rotated in the first rotation direction A. At this time, the support surface 5a moves in the +Y direction, and the medium P supported by the support surface 5a is conveyed in the +Y direction. The +Y direction is the conveyance direction of the medium P when a printing head 7 performs printing on the medium P.
(24) Note that the first roller 3 and the second roller 4 are also configured to be rotatable in a second rotation direction B opposite to the first rotation direction A, and the support surface 5a moves in a −Y direction when the first roller 3 is rotated in the second rotation direction B.
(25) The printer 1 further includes a printing unit 6 that performs printing on the medium P supported and conveyed by the support surface 5a of the conveyance belt 5. The printing unit 6 includes the printing head 7 that discharges ink as “liquid” and a carriage 8 that holds the printing head 7 and can move back and forth in the width direction (X-axis direction) intersecting the conveyance direction (+Y direction) of the medium P. As illustrated in
(26) The printing head 7 discharges ink (liquid) from a liquid discharging surface 7a and performs printing on the medium P being conveyed below the liquid discharging surface 7a.
(27) At the time of printing, the printer 1 in the example causes the carriage 8 including the printing head 7 to move back and forth in the X-axis direction and performs printing, and the medium conveyance device 2 stops the medium P from being conveyed during printing (while the carriage 8 is moving). In other words, the back and forth movement of the carriage 8 and the conveyance of the medium P are performed alternately for printing. That is, the medium conveyance device 2 intermittently conveys the medium P (intermittently moves the conveyance belt 5) in accordance with the back and forth movement of the carriage 8.
(28) The medium P after printing by the printing head 7 is configured to be wound into a roll form by a winding unit 12 provided downstream of the first roller 3 in the conveyance direction.
(29) Note that the printing unit 6 may be a line head type capable of discharging liquid across the width direction (X-axis direction) of the medium P without moving the printing head back and forth in the X-axis direction.
(30) As illustrated in
(31) The board 10 is provided with a heat sink 20 that dissipates heat generated in the board 10. The printing unit 6 is one example of an “operation unit” that operates in the printer 1. In other words, the operation unit includes the printing unit 6. The board 10 is a circuit board that is installed in the printing unit 6 performing printing on the medium P and drives the printing unit 6. For example, the board 10 controls operations, such as discharge of ink from the printing head 7 and movement of the carriage 8, by a control circuit provided on the board 10.
(32) The board 10, by providing with the heat sink 20, is enabled to have a configuration in which heat generated in the board 10 is suitably dissipated. Note that the heat sink 20 in the exemplary embodiment is preferably applied to an operation unit having a great amount of heat generation. The reason is that the operation unit having a great amount of heat generation is particularly likely to become deformed, and thus a gap is likely to be generated between the operation unit and the heat sink 20. Since the printing unit 6 is one of operation units having a great amount of heat generation, providing the heat sink 20 in the exemplary embodiment is especially effective.
(33) Hereinafter, a configuration of the heat sink 20 provided on the board 10 will be described in detail.
(34) With Regard to the Heat Sink
(35) Hereinafter, the heat sink 20 provided on the board 10 will be described with reference to
(36) The heat sink 20 includes a counter surface 21 provided to face a board surface of the board 10. As illustrated in
(37) The heat sink 20 is formed of a material having high heat conductivity. For example, the heat sink 20 may be made of metal such as copper or aluminum.
(38) In
(39) The counter surface 21 includes a slit 22 penetrating the counter surface 21 and extending in the second direction Y. In the exemplary embodiment, a plurality of slits 22 are provided at intervals in the first direction X.
(40) Herein, when the electronic component 13 is soldered, the board 10 may become warped due to a difference in coefficient of thermal expansion between the solder and the board or application of heat to a part of the board 10.
(41) In particular, when the board 10 has a length in the first direction X longer than its length in the second direction Y as illustrated in
(42) The heat sink 20 is attached after the electronic component 13 is soldered. However, when the board 10 is warped with the board surface 10a being inward as illustrated in
(43) In the exemplary embodiment, the counter surface 21 of the heat sink 20 includes the slits 22, so that the counter surface 21 is easily bent in the first direction X as the longitudinal direction.
(44) Consequently, when the board 10 is bent in the first direction X, the space between the board surface 10a of the board 10 and the counter surface 21 of the heat sink 20 can be reduced by a shape of the counter surface 21 of the heat sink 20 that follows the bend in the board 10 (state as illustrated in
(45) While at least one slit 22 may be provided in the first direction X, the plurality of slits 22 provided in the first direction X can make it easier to bend the counter surface 21 in the first direction X.
(46) Hereinafter, the configuration of the heat sink 20 in the exemplary embodiment will be further described.
(47) As illustrated in
(48) With this configuration, the counter surface 21 can be configured to be more easily bent in the first direction X as the longitudinal direction.
(49) The first slit 22a and the second slit 22b are provided in the counter surface 21 illustrated in
(50) In other words, each slit of the first slits 22a and each slit of the second slits 22b are provided in the same position in the first direction X.
(51) This configuration makes a twist less likely to occur when the counter surface 21 of the heat sink 20 is bent, and can thus effectively suppress generation of a gap between the board surface 10a of the board 10 and the counter surface.
(52) Furthermore, as illustrated in
(53) In summary, the heat sink 20 includes the bent surfaces 23, and the slits 22 are formed continuously from the counter surface 21 to the bent surfaces 23, so that the heat dissipation properties in the heat sink 20 can be increased while ease of bending of the counter surface 21 in the first direction X is maintained.
(54) Note that the bent surfaces 23 may be provided only at an end portion on one side instead of both sides in the second direction Y of the counter surface 21. In other words, the bent surface 23 may extend from an end portion on at least one side in the second direction Y of the counter surface 21. However, a greater total area of the bent surface 23 increases the heat dissipation properties of the heat sink 20, so that a greater number of the bent surfaces 23 is more likely to increase the heat dissipation properties of the heat sink 20.
(55) Note that a shape of the bent surfaces 23 having bent tips as illustrated in
(56) With Regard to Attachment of Heat Sink
(57) As illustrated in
(58) More specifically, as illustrated in
(59) Note that while the board 10 with the board surface 10a being warped inwardly is taken as an example in the exemplary embodiment, the heat sink 20 may also be deformed to follow a bend of a warp in the board with the board surface 10a being warped outwardly and then attached to the board.
(60) Other Configuration of Heat Sink
(61) As illustrated in
(62) When the heat sink 20 is bent as illustrated in
(63) The notch portion 26 may also be provided in another bent surface 23 in addition to the bent surfaces 23 located closest to the outside in the first direction X.
(64) The slits 22 are divided according to arrangement of the electronic component 13 provided on the board 10 in the exemplary embodiment. For example, as illustrated in
(65) The slits 22 may also be formed at regular intervals regardless of arrangement of the electronic component 13 on the board 10 side.
(66) A heat sink having the same configuration as that in the exemplary embodiment may be provided on another board including an electronic circuit that drives an operation unit other than the printing unit 6. For example, a heat sink having the same configuration as that in the exemplary embodiment may be adopted as a heat sink of a board that controls operations of, for example, the first roller 3, a drying unit (not illustrated) that dries the medium P after printing, an operating panel (not illustrated) that is for performing operations and for displaying settings and the like in the printer 1, and the like serving as operation units other than the printing unit 6.
(67) In addition, the invention is not intended to be limited to the aforementioned exemplary embodiments, and many variations are possible within the scope of the invention as described in the appended claims. It goes without saying that such variations also fall within the scope of the invention.
(68) For example, the printing apparatus according to the invention may not only be a printing apparatus that performs printing on a fabric as the medium P, but may also be a printing apparatus that performs printing on a sheet of printing paper (that may be a cut sheet or roll paper) as the medium P.
(69) This application claims priority under 35 U.S.C. § 119 to Japanese Patent Application No. 2018-039990, filed Mar. 6, 2018. The entire disclosure of Japanese Patent Application No. 2018-039990 is hereby incorporated herein by reference.